EP3730794B1 - Compressor - Google Patents
Compressor Download PDFInfo
- Publication number
- EP3730794B1 EP3730794B1 EP18891681.1A EP18891681A EP3730794B1 EP 3730794 B1 EP3730794 B1 EP 3730794B1 EP 18891681 A EP18891681 A EP 18891681A EP 3730794 B1 EP3730794 B1 EP 3730794B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- compression mechanism
- temperature detector
- cylinder
- head
- contact portion
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C28/00—Control of, monitoring of, or safety arrangements for, pumps or pumping installations specially adapted for elastic fluids
- F04C28/28—Safety arrangements; Monitoring
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C18/00—Rotary-piston pumps specially adapted for elastic fluids
- F04C18/30—Rotary-piston pumps specially adapted for elastic fluids having the characteristics covered by two or more of groups F04C18/02, F04C18/08, F04C18/22, F04C18/24, F04C18/48, or having the characteristics covered by one of these groups together with some other type of movement between co-operating members
- F04C18/32—Rotary-piston pumps specially adapted for elastic fluids having the characteristics covered by two or more of groups F04C18/02, F04C18/08, F04C18/22, F04C18/24, F04C18/48, or having the characteristics covered by one of these groups together with some other type of movement between co-operating members having both the movement defined in group F04C18/02 and relative reciprocation between the co-operating members
- F04C18/322—Rotary-piston pumps specially adapted for elastic fluids having the characteristics covered by two or more of groups F04C18/02, F04C18/08, F04C18/22, F04C18/24, F04C18/48, or having the characteristics covered by one of these groups together with some other type of movement between co-operating members having both the movement defined in group F04C18/02 and relative reciprocation between the co-operating members with vanes hinged to the outer member and reciprocating with respect to the outer member
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B39/00—Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C23/00—Combinations of two or more pumps, each being of rotary-piston or oscillating-piston type, specially adapted for elastic fluids; Pumping installations specially adapted for elastic fluids; Multi-stage pumps specially adapted for elastic fluids
- F04C23/001—Combinations of two or more pumps, each being of rotary-piston or oscillating-piston type, specially adapted for elastic fluids; Pumping installations specially adapted for elastic fluids; Multi-stage pumps specially adapted for elastic fluids of similar working principle
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C29/00—Component parts, details or accessories of pumps or pumping installations, not provided for in groups F04C18/00 - F04C28/00
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C29/00—Component parts, details or accessories of pumps or pumping installations, not provided for in groups F04C18/00 - F04C28/00
- F04C29/06—Silencing
- F04C29/065—Noise dampening volumes, e.g. muffler chambers
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2240/00—Components
- F04C2240/30—Casings or housings
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2240/00—Components
- F04C2240/80—Other components
- F04C2240/81—Sensor, e.g. electronic sensor for control or monitoring
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2270/00—Control; Monitoring or safety arrangements
- F04C2270/19—Temperature
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C2270/00—Control; Monitoring or safety arrangements
- F04C2270/19—Temperature
- F04C2270/195—Controlled or regulated
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04C—ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
- F04C23/00—Combinations of two or more pumps, each being of rotary-piston or oscillating-piston type, specially adapted for elastic fluids; Pumping installations specially adapted for elastic fluids; Multi-stage pumps specially adapted for elastic fluids
- F04C23/008—Hermetic pumps
Definitions
- the present disclosure relates to a compressor included in an air conditioner.
- Patent Literature 1 JP 2008-106738 A discloses a compressor.
- EP1908958A2 is a member of the family of Patent Literature 1.
- the compressor includes a casing having an outer surface provided with a discharge temperature sensor configured to detect temperature of a discharged refrigerant. Further examples of known compressors are disclosed in patent documents US7322806B2 and JP2012097755A .
- Patent Literature 1 does not refer to a temperature sensor configured to sense temperature of a compression mechanism. Sensing the temperature of the compression mechanism leads to sensing a phenomenon such as abnormal heating at the compression mechanism.
- Aim of the present invention is to provide a compressor which improves the state of the art indicated above. This aim is achieved by the compressor according to the corresponding appended claims.
- a compressor according to a first aspect, the invention is defined in independent claim 1.
- This configuration enables sensing a phenomenon of the compression mechanism such as abnormal heating.
- a compressor according to a first aspect, the invention is a compressor in which, in a side view, at least 90% of the length of the compression mechanism contact portion along the rotation axis is overlapped with the temperature detector, or, in a side view, at least 90% of the length of the temperature detector along the rotation axis is overlapped with the compression mechanism contact portion.
- This configuration achieves increase of an overlapped portion between the compression mechanism contact portion and the temperature detector. In this configuration, heat emitted from the compression mechanism is more likely to be transmitted to the temperature detector that can thus further sense abnormal heating at the compression mechanism.
- a compressor according to a second aspect is the compressor according the first aspect, in which the compression mechanism includes a compression mechanism extension section.
- the compression mechanism extension section radially extends from a center to a peripheral edge of the compression mechanism.
- the casing includes a compression mechanism extension section contact portion.
- the compression mechanism extension section contact portion is a portion of the casing in contact with the compression mechanism extension section.
- the temperature detector is attached to the casing so as to cover the compression mechanism extension section contact portion in a side view.
- the temperature detector covers the compression mechanism extension section contact portion in a side view. Heat generated at the compression mechanism is thus likely to be transmitted directly to the temperature detector through the compression mechanism extension section.
- a compressor according to another aspect is the compressor according to the first or second aspect, in which the contact member includes a continuous portion radially occupying from an outer edge of the compression chamber to the compression mechanism contact portion.
- the continuous portion has no opening.
- the compression mechanism contact portion and the outer edge of the compression chamber are connected via the continuous portion of the contact member.
- the continuous portion has no opening. Heat of the compression chamber is thus likely to be transmitted to the compression mechanism contact portion, enabling more accurate sensing of abnormal heating at the compression mechanism.
- a compressor according to another aspect is the compressor according to any one of the former aspects, in which the compression mechanism has a suction hole.
- a first imaginary half line starts from the rotation axis and passes a center of the suction hole in a planar view.
- a second imaginary half line starts from the rotation axis and passes the temperature detector in a planar view.
- the first imaginary half line and the second imaginary half line form an angle not less than 30 degrees and not more than 330 degrees.
- This configuration secures distance between a suction pipe or a refrigerant circuit component connected to the suction pipe and the temperature detector. This inhibits defects such as decrease in detection temperature of the temperature detector by the refrigerant circuit component having low temperature.
- a compressor according to another aspect is the compressor according to any one of the former aspects, in which the temperature detector is configured as a thermistor.
- the temperature detector in this configuration is a thermistor configured to measure temperature.
- the compressor can thus be controlled in accordance with measured temperature.
- a compressor according to another aspect is the compressor according to any one of the former aspects, except the last one mentioned, in which the temperature detector is configured as a thermostat.
- the temperature detector in this configuration is a thermostat configured to sense abnormal temperature. This configuration thus causes a control circuit included in the compressor to be shut down upon sensing of abnormal temperature.
- FIG. 1 depicts a compressor 101 and an accumulator 102 connected to each other.
- FIG. 1 includes arrows each indicating a flow of a gas refrigerant.
- the compressor 101 is configured to compress a refrigerant.
- the accumulator 102 is connected to a front stage of the compressor 101.
- the accumulator 102 is configured to receive a refrigerant in a gas-liquid two-phase state, and reserve a liquid refrigerant while sending a gas refrigerant to the compressor 101.
- the compressor 101 is configured as a two-cylinder rotary compressor.
- the compressor 101 includes a casing 10, a compression mechanism 15, a motor 16, a crankshaft 17, two suction pipes 19, a discharge pipe 20, and a temperature detector 50.
- the casing 10 includes a trunk 11, an upper portion 12, and a lower portion 13.
- the trunk 11 has a cylindrical shape.
- the upper portion 12 airtightly closes an upper opening of the trunk 11.
- the lower portion 13 airtightly closes a lower opening of the trunk 11.
- the casing 10 accommodates the compression mechanism 15, the motor 16, and the crankshaft 17.
- the suction pipes 19 and the discharge pipe 20 penetrate the casing 10 and are airtightly fixed to the casing 10.
- the casing 10 has an internal space including a lower portion serving as an oil reservoir 10b for refrigerating machine oil.
- the motor 16 is configured as a brushless DC motor.
- the motor 16 includes a stator 51 and a rotor 52.
- the stator 51 has a cylindrical shape and is fixed to an inner peripheral surface of the trunk 11 of the casing 10.
- the rotor 52 has a columnar shape and is disposed adjacent to an inner periphery of the stator 51.
- the stator 51 and the rotor 52 have a slight gap therebetween.
- the rotor 52 rotates around a rotation axis RA.
- the stator 51 is provided with a coil (not depicted).
- the rotor 52 is provided with a plurality of magnets (not depicted). The magnets interact with a magnetic field induced by the coil to generate rotary force of the rotor 52.
- the crankshaft 17 rotates around the rotation axis RA.
- the crankshaft 17 transmits the rotary force of the rotor 52 to the compression mechanism 15.
- the crankshaft 17 extends vertically.
- the crankshaft 17 has an upper end vertically penetrating the rotor 52 and fixed to the rotor 52.
- the crankshaft 17 has a lower portion provided with a front eccentric part 17a and a rear eccentric part 17b.
- the front eccentric part 17a and the rear eccentric part 17b are positioned point-symmetrically with respect to the rotation axis RA of the crankshaft 17.
- the compression mechanism 15 includes a front cylinder 24, a front piston 25, a front head 23, a front muffler 26, a middle plate 31, a rear cylinder 44, a rear piston 45, a rear head 43, and a rear muffler 46.
- the front cylinder 24 is disposed between the front head 23 and the middle plate 31.
- the front cylinder 24 has an upper surface in contact with a lower surface of the front head 23.
- the front cylinder 24 has a lower surface in contact with an upper surface of the middle plate 31.
- the front piston 25 is also disposed between the front head 23 and the middle plate 31.
- the front piston 25 has an upper surface in contact with the lower surface of the front head 23.
- the front piston 25 has a lower surface in contact with the upper surface of the middle plate 31.
- the rear cylinder 44 is disposed between the middle plate 31 and the rear head 43.
- the rear cylinder 44 has an upper surface in contact with a lower surface of the middle plate 31.
- the rear cylinder 44 has a lower surface in contact with an upper surface of the rear head 43.
- the rear piston 45 is also disposed between the middle plate 31 and the rear head 43.
- the rear piston 45 has an upper surface in contact with the lower surface of the middle plate 31.
- the rear piston 45 has a lower surface in contact with the upper surface of the rear head 43.
- the compression mechanism 15 includes a front compression chamber 40.
- the front compression chamber 40 is a space surrounded with the front cylinder 24, the front piston 25, the front head 23, and the middle plate 31.
- the compression mechanism 15 further includes a rear compression chamber 41.
- the rear compression chamber 41 is a space surrounded with the rear cylinder 44, the rear piston 45, the rear head 43, and the middle plate 31.
- the compression mechanism 15, the motor 16, and the crankshaft 17 share the rotation axis RA.
- FIG. 2 is a sectional view of the compression mechanism 15 at the height of the front compression chamber 40.
- the front cylinder 24 is provided with a front cylinder hole 24a, a front suction hole 24b, a front discharge path 24c, a front bush accommodation hole 24d, a front blade accommodation hole 24e, and a front cylinder communication hole 24h.
- the front cylinder hole 24a has a columnar shape and vertically penetrates the front cylinder 24.
- the front suction hole 24b radially penetrates the front cylinder 24.
- the front discharge path 24c is constituted by a cutout at an upper end of an inner circumferential surface of the front cylinder 24.
- the front bush accommodation hole 24d, the front blade accommodation hole 24e, and the front cylinder communication hole 24h each vertically penetrate the front cylinder 24.
- the front bush accommodation hole 24d is positioned between the front suction hole 24b and the front discharge path 24c in a planar view.
- the front bush accommodation hole 24d communicates with the front cylinder hole 24a.
- the front blade accommodation hole 24e communicates with the front bush accommodation hole 24d.
- the front cylinder communication hole 24h constitutes part of a muffler space communication path 34a to be described later.
- the front piston 25 includes a front roller 25a and a front blade 25b.
- the front roller 25a has a cylindrical shape.
- the front blade 25b has a plate shape.
- the front blade 25b protrudes in a radial direction of the front roller 25a from an outer circumferential surface of the front roller 25a.
- the front roller 25a is accommodated in the front cylinder hole 24a.
- the front roller 25a has a hole into which the front eccentric part 17a of the crankshaft 17 is fitted.
- the front blade 25b is accommodated in the front cylinder hole 24a, the front bush accommodation hole 24d, and the front blade accommodation hole 24e.
- the front bush accommodation hole 24d further accommodates a front bush 22.
- the front bush 22 includes a pair of semicolumnar members.
- the front roller 25a revolves around the rotation axis RA.
- the front piston 25 divides the front compression chamber 40 into a front suction chamber 40a and a front discharge chamber 40b.
- the front suction chamber 40a communicates with the front suction hole 24b.
- the front discharge chamber 40b communicates with the front discharge path 24c.
- the front suction chamber 40a and the front discharge chamber 40b each have a volume varying in accordance with a position of the front piston 25.
- the front head 23 closes the front cylinder hole 24a.
- the front head 23 is fixed to an inner peripheral surface of the casing 10.
- the front head 23 includes a front bearing 23a supporting the crankshaft 17.
- the front head 23 further includes a front discharge port 23b.
- the front discharge port 23b communicates with the front discharge path 24c.
- the front discharge port 23b is a passage allowing a refrigerant compressed in the front compression chamber 40 to be sent to a front muffler space 32.
- the front head 23 has an upper surface to which a front discharge valve (not depicted) configured to close or open the front discharge port 23b is attached.
- the front discharge valve inhibits a backflow of a refrigerant from the front muffler space 32 to the front compression chamber 40.
- the front muffler 26 is fixed to the upper surface of the front head 23.
- the front muffler 26 and the front head 23 shape the front muffler space 32.
- FIG. 3 is a perspective view of the front head 23 to which the front muffler 26 is attached.
- the front muffler 26 includes a fixed portion 26a and a protrusion 26b.
- the fixed portion 26a is a peripheral portion fixed to the upper surface of the front head 23.
- the protrusion 26b protrudes upward from the fixed portion 26a.
- the front muffler 26 is provided to reduce noise generated when a refrigerant is discharged from the front discharge port 23b of the front head 23.
- the front muffler 26 has a front bearing through hole 26c.
- the front bearing 23a of the front head 23 penetrates the front bearing through hole 26c.
- the front muffler 26 has two front muffler discharge holes 26d.
- the front muffler discharge holes 26d communicate with the front bearing through hole 26c.
- the middle plate 31 depicted in FIG. 1 closes the front cylinder hole 24a and a rear cylinder hole 44a to be described later.
- FIG. 4 is a sectional view of the compression mechanism 15 at the height of the rear compression chamber 41.
- the rear cylinder 44 is provided with the rear cylinder hole 44a, a rear suction hole 44b, a rear discharge path 44c, a rear bush accommodation hole 44d, a rear blade accommodation hole 44e, and a rear cylinder communication hole 44h.
- the rear cylinder hole 44a has a columnar shape and vertically penetrates the rear cylinder 44.
- the rear suction hole 44b radially penetrates the rear cylinder 44.
- the rear discharge path 44c is constituted by a cutout at a lower end of an inner circumferential surface of the rear cylinder 44.
- the rear bush accommodation hole 44d, the rear blade accommodation hole 44e, and the rear cylinder communication hole 44h each vertically penetrate the rear cylinder 44.
- the rear bush accommodation hole 44d is positioned between the rear suction hole 44b and the rear discharge path 44c in a planar view.
- the rear bush accommodation hole 44d communicates with the rear cylinder hole 44a.
- the rear blade accommodation hole 44e communicates with the rear bush accommodation hole 44d.
- the rear cylinder communication hole 44h constitutes part of the muffler space communication path 34a to be described later.
- the rear piston 45 includes a rear roller 45a and a rear blade 45b.
- the rear roller 45a has a cylindrical shape.
- the rear blade 45b has a plate shape.
- the rear blade 45b protrudes in a radial direction of the rear roller 45a from an outer circumferential surface of the rear roller 45a.
- the rear roller 45a is accommodated in the rear cylinder hole 44a.
- the rear roller 45a has a hole into which the rear eccentric part 17b of the crankshaft 17 is fitted.
- the rear blade 45b is accommodated in the rear cylinder hole 44a, the rear bush accommodation hole 44d, and the rear blade accommodation hole 44e.
- the rear bush accommodation hole 44d further accommodates a rear bush 42.
- the rear bush 42 includes a pair of semicolumnar members.
- the rear roller 45a revolves around the rotation axis RA.
- the rear piston 45 divides the rear compression chamber 41 into a rear suction chamber 41a and a rear discharge chamber 41b.
- the rear suction chamber 41a communicates with the rear suction hole 44b.
- the rear discharge chamber 41b communicates with the rear discharge path 44c.
- the rear suction chamber 41a and the rear discharge chamber 41b each have a volume varying in accordance with a position of the rear piston 45.
- the rear head 43 closes the rear cylinder hole 44a.
- the rear head 43 includes a rear bearing 43a supporting the crankshaft 17.
- the rear head 43 further includes a rear discharge port 43b.
- the rear discharge port 43b communicates with the rear discharge path 44c.
- the rear discharge port 43b is a passage allowing a refrigerant compressed in the rear compression chamber 41 to be sent to a rear muffler space 33.
- the rear head 43 has a lower surface to which a rear discharge valve (not depicted) configured to close or open the rear discharge port 43b is attached.
- the rear discharge valve inhibits a backflow of a refrigerant from the rear muffler space 33 to the rear compression chamber 41.
- FIG. 5 is a perspective view of the rear head 43.
- the rear head 43 has a side wall 43d.
- the side wall 43d is an annular portion provided at an outer edge of the lower surface of the rear head 43.
- the side wall 43d is smaller in height than the rear bearing 43a.
- the side wall 43d has a plurality of muffler fastening holes 43e.
- the muffler fastening holes 43e each allow a bolt to pass in order to fix the rear muffler 46 to the rear head 43.
- the rear head 43 has a muffler bottom surface 43f and a rear head communication hole 43h.
- the muffler bottom surface 43f constitutes the lower surface of the rear head 43 positioned between the side wall 43d and the rear bearing 43a.
- the rear head communication hole 43h opens in the muffler bottom surface 43f.
- the rear head communication hole 43h constitutes part of the muffler space communication path 34a to be described later.
- the muffler bottom surface 43f is provided with a rear discharge valve 43c.
- the rear muffler 46 is fixed, by a bolt, to a lower surface of the side wall 43d of the rear head 43.
- the rear muffler 46 is a plate-shaped member. The rear muffler 46 reduces noise generated when a refrigerant is discharged from the rear discharge port 43b.
- the rear muffler 46 has a rear bearing through hole penetrated by the rear bearing 43a of the rear head 43.
- the rear muffler 46 covers the lower surface of the rear head 43 such that the rear muffler 46 and the rear head 43 form the rear muffler space 33.
- the rear muffler space 33 has a substantially annular shape.
- the compression mechanism 15 includes the muffler space communication path 34a.
- the muffler space communication path 34a allows the front muffler space 32 and the rear muffler space 33 to communicate with each other. As depicted in FIG. 1 , the muffler space communication path 34a penetrates the front head 23, the front cylinder 24, the middle plate 31, the rear cylinder 44, and the rear head 43.
- the muffler space communication path 34a includes the front cylinder communication hole 24h, the rear cylinder communication hole 44h, and the rear head communication hole 43h.
- the suction pipes 19 allow a refrigerant to be supplied from a refrigerant circuit to the compression mechanism 15.
- the two suction pipes 19 are respectively connected to the front suction hole 24b and the rear suction hole 44b.
- the two suction pipes 19 are connected to the accumulator 102.
- the discharge pipe 20 allows a refrigerant compressed by the compression mechanism 15 to be supplied to the refrigerant circuit.
- the discharge pipe 20 has a first end positioned above the motor 16 in the internal space of the casing 10.
- the discharge pipe 20 has a second end connected to the refrigerant circuit in a space outside the casing 10.
- the temperature detector 50 is configured to sense temperature of an object in contact.
- the temperature detector 50 may be exemplified by a thermistor.
- the compressor 101 may be stopped by a control device when the thermistor outputs temperature exceeding a predetermined threshold.
- the temperature detector 50 may alternatively be configured as a thermostat. Specifically, when the thermostat senses temperature exceeding a predetermined threshold, power supply to the compressor may be interrupted. Examples of the thermostat may include a bimetal thermostat. The examples of the thermostat may further include an overload relay and a thermal relay.
- the temperature detector 50 is attached to an outer surface of the trunk 11 of the casing 10 in order to acquire temperature of the compression mechanism 15.
- FIG. 6 , FIG. 7 , FIG. 8 , and FIG. 9 are explanatory views on a position where the temperature detector 50 is attached.
- the temperature detector 50 is attached to an outer surface of a compression mechanism contact portion 10a.
- the compression mechanism contact portion 10a of the casing 10 is in contact with the compression mechanism 15.
- the compression mechanism contact portion 10a according to the present embodiment is a portion of the trunk 11 whose inner surface is in contact with the front head 23.
- the compression mechanism contact portion 10a has a length H1 that is along the rotation axis RA and is at least partially overlapped with a length H2, along the rotation axis RA, of the temperature detector 50. At least 90% of the length H1 is overlapped with the length H2, or at least 90% of the length H2 is overlapped with the length H1.
- the temperature detector 50 is attached so as to cover the compression mechanism extension section contact portion 10c in a side view.
- the compression mechanism extension section contact portion 10c of the casing 10 is in contact with a compression mechanism extension section 15a.
- the compression mechanism extension section 15a radially extends from a center to a peripheral edge of the compression mechanism 15.
- the center of the compression mechanism 15 corresponds to a portion, which is positioned at a center of the internal space of the casing 10, of a member constituting a wall surface of the compression chamber (the front compression chamber 40, the rear compression chamber 41), a member in contact with the member constituting the wall surface of the compression chamber, or the like.
- Examples of the center of the compression mechanism 15 include a center of the front head 23 and an inner circumferential portion of a cylinder (the front cylinder 24, the rear cylinder 44).
- the peripheral edge of the compression mechanism 15 is a portion of the compression mechanism 15 in contact with the casing 10, and examples of the peripheral edge of the compression mechanism 15 include an outer edge of the front head 23 (in a case where the front head 23 is in contact with the casing 10) and an outer edge of the cylinder (in a case where the cylinder is in contact with the casing 10).
- the compression mechanism extension section 15a according to the present embodiment constitutes part of the front head 23.
- the compression mechanism extension section 15a has a thickness H3.
- FIG. 8 is a schematic plan view of the compressor 101 and the accumulator 102.
- the accumulator 102 is connected to the compressor 101 via the two suction pipes 19.
- the two suction pipes 19 are respectively connected to the front suction hole 24b and the rear suction hole 44b of the compression mechanism 15.
- This figure includes a first imaginary half line L1 and a second imaginary half line L2.
- the first imaginary half line L1 starts from the rotation axis RA and passes centers of the front suction hole 24b and the rear suction hole 44b in a planar view.
- the second imaginary half line L2 starts from the rotation axis RA and passes the temperature detector 50 in a planar view.
- the first imaginary half line L1 and the second imaginary half line L2 form an angle ⁇ not less than 30 degrees and not more than 330 degrees. That is, the temperature detector 50 is attached to any point in an area A indicated in the figure. Assume that the angle ⁇ increases counterclockwise from the first imaginary half line L1 to the second imaginary half line L2.
- FIG. 9 is a plan view of the compression mechanism 15 along with a section of the trunk 11.
- the front head 23 includes a continuous portion 23r and a discontinuous portion 23s.
- the continuous portion 23r radially occupies from an outer edge 40z of the front compression chamber 40 to the casing 10.
- the casing 10 is separated from the outer edge 40z of the compression chamber 40 by an oil return hole 23c.
- the outer edge 40z of the compression chamber 40 agrees with an outline of the front cylinder hole 24a.
- the oil return hole 23c is an opening that allows refrigerating machine oil in a high-pressure space S1 to return to the oil reservoir 10b.
- the temperature detector 50 is attached to an outer surface of a portion, which is in contact with the continuous portion 23r, of the compression mechanism contact portion 10a of the casing 10. That is, the temperature detector 50 is attached to any point in an area B indicated in the figure.
- the motor 16 being energized rotates the crankshaft 17 along with the rotor 52.
- the front eccentric part 17a and the rear eccentric part 17b eccentrically rotate around the rotation axis RA of the crankshaft 17. This causes revolution of the front piston 25 and the rear piston 45.
- the front piston 25 revolves, the outer circumferential surface of the front roller 25a is in contact with the inner circumferential surface of the front cylinder 24.
- the front blade 25b reciprocates while being supported by the front bush 22 at the opposite sides.
- the front bush 22 swings in the front bush accommodation hole 24d while being sliding with respect to the front cylinder 24 and the front blade 25b.
- Revolution of the front roller 25a gradually increases the volume of the front suction chamber 40a. This causes a refrigerant having low pressure to be sucked from the suction pipe 19 into the front suction chamber 40a. Further revolution of the front roller 25a causes the front suction chamber 40a to become the front discharge chamber 40b. The volume of the front discharge chamber 40b gradually decreases, so that the refrigerant having low pressure in the front discharge chamber 40b is compressed to become a refrigerant having high pressure. The refrigerant having high pressure is discharged into the front muffler space 32 via the front discharge path 24c and the front discharge port 23b. The front muffler space 32 periodically receives the refrigerant having high pressure from the front discharge port 23b.
- Revolution of the rear roller 45a gradually increases the volume of the rear suction chamber 41a. This causes a refrigerant having low pressure to be sucked from the suction pipe 19 into the rear suction chamber 41a. Further revolution of the rear roller 45a causes the rear suction chamber 41a to become the rear discharge chamber 41b. The volume of the rear discharge chamber 41b gradually decreases, so that the refrigerant having low pressure in the rear discharge chamber 41b is compressed to become a refrigerant having high pressure. The refrigerant having high pressure is discharged into the rear muffler space 33 via the rear discharge path 44c and the rear discharge port 43b. The rear muffler space 33 periodically receives the refrigerant having high pressure from the rear discharge port 43b.
- the refrigerant discharged into the rear muffler space 33 flows in the rear muffler space 33 and enters the muffler space communication path 34a.
- the refrigerant then flows into the front muffler space 32.
- the refrigerant in the front muffler space 32 passes the front muffler discharge holes 26d of the front muffler 26 and is supplied into the high-pressure space S1 in the casing 10.
- the refrigerant supplied into the high-pressure space S1 flows upward to be supplied to the discharge pipe 20.
- the temperature detector 50 is configured to measure temperature of the compression mechanism contact portion 10a of the casing 10. The compression mechanism contact portion 10a is in contact with the compression mechanism 15. The temperature detector 50 can thus sense abnormal heating at the compression mechanism 15.
- This configuration secures an overlapped portion of the compression mechanism contact portion 10a and the temperature detector 50.
- the overlapped portion has a length that is at least 90% of the length of the compression mechanism contact portion 10a or the temperature detector 50.
- heat emitted from the compression mechanism 15 is likely to be transmitted to the temperature detector 50 that can thus sense abnormal heating at the compression mechanism 15.
- the temperature detector 50 can be configured to cover the compression mechanism extension section contact portion 10c in a side view. Heat generated at the compression mechanism 15 is thus likely to be transmitted directly to the temperature detector 50 through the compression mechanism extension section 15a.
- the compressor 101 can be controlled in accordance with measured temperature. In the case where the temperature detector 50 is configured as a thermostat, a control circuit of the compressor 101 can be shut down upon sensing of abnormal temperature.
- the compressor 101 is configured as a two-cylinder rotary compressor.
- the compressor 101 may be configured as a single-cylinder rotary compressor, a multistage rotary compressor other than a two-stage type, or the like.
- the compression mechanism 15 includes a contact member that is in contact with the casing 10 and corresponds to the front head 23.
- the contact member may alternatively be a component other than the front head 23.
- the contact member may constitute at least part of the front cylinder 24, the rear cylinder 44, or the rear head 43.
- the compression mechanism extension section 15a may also be the front cylinder 24, the rear cylinder 44, the rear head 43, or the like, instead of the front head 23.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
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- Applications Or Details Of Rotary Compressors (AREA)
- Compressor (AREA)
- Measuring Temperature Or Quantity Of Heat (AREA)
Description
- The present disclosure relates to a compressor included in an air conditioner.
- Patent Literature 1 (
JP 2008-106738 A EP1908958A2 is a member of the family of Patent Literature 1. The compressor includes a casing having an outer surface provided with a discharge temperature sensor configured to detect temperature of a discharged refrigerant. Further examples of known compressors are disclosed in patent documentsUS7322806B2 andJP2012097755A - Patent Literature 1 does not refer to a temperature sensor configured to sense temperature of a compression mechanism. Sensing the temperature of the compression mechanism leads to sensing a phenomenon such as abnormal heating at the compression mechanism.
- Aim of the present invention is to provide a compressor which improves the state of the art indicated above. This aim is achieved by the compressor according to the corresponding appended claims.
- A compressor according to a first aspect, the invention, is defined in independent claim 1.
- This configuration enables sensing a phenomenon of the compression mechanism such as abnormal heating.
- A compressor according to a first aspect, the invention, is a compressor in which, in a side view, at least 90% of the length of the compression mechanism contact portion along the rotation axis is overlapped with the temperature detector, or, in a side view, at least 90% of the length of the temperature detector along the rotation axis is overlapped with the compression mechanism contact portion.
- This configuration achieves increase of an overlapped portion between the compression mechanism contact portion and the temperature detector. In this configuration, heat emitted from the compression mechanism is more likely to be transmitted to the temperature detector that can thus further sense abnormal heating at the compression mechanism.
- A compressor according to a second aspect is the compressor according the first aspect, in which the compression mechanism includes a compression mechanism extension section. The compression mechanism extension section radially extends from a center to a peripheral edge of the compression mechanism. The casing includes a compression mechanism extension section contact portion. The compression mechanism extension section contact portion is a portion of the casing in contact with the compression mechanism extension section. The temperature detector is attached to the casing so as to cover the compression mechanism extension section contact portion in a side view.
- In this configuration, the temperature detector covers the compression mechanism extension section contact portion in a side view. Heat generated at the compression mechanism is thus likely to be transmitted directly to the temperature detector through the compression mechanism extension section.
- A compressor according to another aspect is the compressor according to the first or second aspect, in which the contact member includes a continuous portion radially occupying from an outer edge of the compression chamber to the compression mechanism contact portion. The continuous portion has no opening.
- In this configuration, the compression mechanism contact portion and the outer edge of the compression chamber are connected via the continuous portion of the contact member. The continuous portion has no opening. Heat of the compression chamber is thus likely to be transmitted to the compression mechanism contact portion, enabling more accurate sensing of abnormal heating at the compression mechanism.
- A compressor according to another aspect is the compressor according to any one of the former aspects, in which the compression mechanism has a suction hole. A first imaginary half line starts from the rotation axis and passes a center of the suction hole in a planar view. A second imaginary half line starts from the rotation axis and passes the temperature detector in a planar view. The first imaginary half line and the second imaginary half line form an angle not less than 30 degrees and not more than 330 degrees.
- This configuration secures distance between a suction pipe or a refrigerant circuit component connected to the suction pipe and the temperature detector. This inhibits defects such as decrease in detection temperature of the temperature detector by the refrigerant circuit component having low temperature.
- A compressor according to another aspect is the compressor according to any one of the former aspects, in which the temperature detector is configured as a thermistor.
- The temperature detector in this configuration is a thermistor configured to measure temperature. The compressor can thus be controlled in accordance with measured temperature.
- A compressor according to another aspect is the compressor according to any one of the former aspects, except the last one mentioned, in which the temperature detector is configured as a thermostat.
- The temperature detector in this configuration is a thermostat configured to sense abnormal temperature. This configuration thus causes a control circuit included in the compressor to be shut down upon sensing of abnormal temperature.
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FIG. 1 is a sectional view of acompressor 101 and anaccumulator 102 according to an embodiment. -
FIG. 2 is a sectional view at a height position of afront compression chamber 40 depicted inFIG. 1 . -
FIG. 3 is a perspective view of afront head 23 and afront muffler 26. -
FIG. 4 is a sectional view at a height position of arear compression chamber 41 depicted inFIG. 1 . -
FIG. 5 is a perspective view of arear head 43. -
FIG. 6 is an enlarged view on a position where atemperature detector 50 is attached. -
FIG. 7 is another enlarged view on the position where thetemperature detector 50 is attached. -
FIG. 8 is a schematic plan view of thecompressor 101 and theaccumulator 102. -
FIG. 9 is a plan view of thefront head 23. - Description is made to a compressor according to an embodiment of the present invention. The embodiment to be described hereinafter specifically exemplifies the present invention without limiting the technical scope thereof, and can be appropriately modified within the range not departing from the present invention as defined by the claims.
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FIG. 1 depicts acompressor 101 and anaccumulator 102 connected to each other.FIG. 1 includes arrows each indicating a flow of a gas refrigerant. Thecompressor 101 is configured to compress a refrigerant. Theaccumulator 102 is connected to a front stage of thecompressor 101. Theaccumulator 102 is configured to receive a refrigerant in a gas-liquid two-phase state, and reserve a liquid refrigerant while sending a gas refrigerant to thecompressor 101. - The
compressor 101 is configured as a two-cylinder rotary compressor. Thecompressor 101 includes acasing 10, acompression mechanism 15, amotor 16, acrankshaft 17, twosuction pipes 19, adischarge pipe 20, and atemperature detector 50. - The
casing 10 includes atrunk 11, anupper portion 12, and alower portion 13. Thetrunk 11 has a cylindrical shape. Theupper portion 12 airtightly closes an upper opening of thetrunk 11. Thelower portion 13 airtightly closes a lower opening of thetrunk 11. - The
casing 10 accommodates thecompression mechanism 15, themotor 16, and thecrankshaft 17. Thesuction pipes 19 and thedischarge pipe 20 penetrate thecasing 10 and are airtightly fixed to thecasing 10. - The
casing 10 has an internal space including a lower portion serving as anoil reservoir 10b for refrigerating machine oil. - The
motor 16 is configured as a brushless DC motor. Themotor 16 includes astator 51 and arotor 52. Thestator 51 has a cylindrical shape and is fixed to an inner peripheral surface of thetrunk 11 of thecasing 10. Therotor 52 has a columnar shape and is disposed adjacent to an inner periphery of thestator 51. Thestator 51 and therotor 52 have a slight gap therebetween. Therotor 52 rotates around a rotation axis RA. - The
stator 51 is provided with a coil (not depicted). Therotor 52 is provided with a plurality of magnets (not depicted). The magnets interact with a magnetic field induced by the coil to generate rotary force of therotor 52. - The
crankshaft 17 rotates around the rotation axis RA. Thecrankshaft 17 transmits the rotary force of therotor 52 to thecompression mechanism 15. Thecrankshaft 17 extends vertically. Thecrankshaft 17 has an upper end vertically penetrating therotor 52 and fixed to therotor 52. Thecrankshaft 17 has a lower portion provided with a fronteccentric part 17a and a reareccentric part 17b. The fronteccentric part 17a and the reareccentric part 17b are positioned point-symmetrically with respect to the rotation axis RA of thecrankshaft 17. - The
compression mechanism 15 includes afront cylinder 24, afront piston 25, afront head 23, afront muffler 26, amiddle plate 31, arear cylinder 44, arear piston 45, arear head 43, and arear muffler 46. - The
front cylinder 24 is disposed between thefront head 23 and themiddle plate 31. Thefront cylinder 24 has an upper surface in contact with a lower surface of thefront head 23. Thefront cylinder 24 has a lower surface in contact with an upper surface of themiddle plate 31. - The
front piston 25 is also disposed between thefront head 23 and themiddle plate 31. Thefront piston 25 has an upper surface in contact with the lower surface of thefront head 23. Thefront piston 25 has a lower surface in contact with the upper surface of themiddle plate 31. - The
rear cylinder 44 is disposed between themiddle plate 31 and therear head 43. Therear cylinder 44 has an upper surface in contact with a lower surface of themiddle plate 31. Therear cylinder 44 has a lower surface in contact with an upper surface of therear head 43. - The
rear piston 45 is also disposed between themiddle plate 31 and therear head 43. Therear piston 45 has an upper surface in contact with the lower surface of themiddle plate 31. Therear piston 45 has a lower surface in contact with the upper surface of therear head 43. - The
compression mechanism 15 includes afront compression chamber 40. Thefront compression chamber 40 is a space surrounded with thefront cylinder 24, thefront piston 25, thefront head 23, and themiddle plate 31. - The
compression mechanism 15 further includes arear compression chamber 41. Therear compression chamber 41 is a space surrounded with therear cylinder 44, therear piston 45, therear head 43, and themiddle plate 31. - The
compression mechanism 15, themotor 16, and thecrankshaft 17 share the rotation axis RA. -
FIG. 2 is a sectional view of thecompression mechanism 15 at the height of thefront compression chamber 40. Thefront cylinder 24 is provided with afront cylinder hole 24a, afront suction hole 24b, afront discharge path 24c, a frontbush accommodation hole 24d, a frontblade accommodation hole 24e, and a frontcylinder communication hole 24h. - The
front cylinder hole 24a has a columnar shape and vertically penetrates thefront cylinder 24. Thefront suction hole 24b radially penetrates thefront cylinder 24. Thefront discharge path 24c is constituted by a cutout at an upper end of an inner circumferential surface of thefront cylinder 24. - The front
bush accommodation hole 24d, the frontblade accommodation hole 24e, and the frontcylinder communication hole 24h each vertically penetrate thefront cylinder 24. The frontbush accommodation hole 24d is positioned between thefront suction hole 24b and thefront discharge path 24c in a planar view. The frontbush accommodation hole 24d communicates with thefront cylinder hole 24a. The frontblade accommodation hole 24e communicates with the frontbush accommodation hole 24d. The frontcylinder communication hole 24h constitutes part of a mufflerspace communication path 34a to be described later. - The
front piston 25 includes afront roller 25a and afront blade 25b. Thefront roller 25a has a cylindrical shape. Thefront blade 25b has a plate shape. Thefront blade 25b protrudes in a radial direction of thefront roller 25a from an outer circumferential surface of thefront roller 25a. - The
front roller 25a is accommodated in thefront cylinder hole 24a. Thefront roller 25a has a hole into which the fronteccentric part 17a of thecrankshaft 17 is fitted. Thefront blade 25b is accommodated in thefront cylinder hole 24a, the frontbush accommodation hole 24d, and the frontblade accommodation hole 24e. The frontbush accommodation hole 24d further accommodates afront bush 22. Thefront bush 22 includes a pair of semicolumnar members. Thefront roller 25a revolves around the rotation axis RA. - The
front piston 25 divides thefront compression chamber 40 into afront suction chamber 40a and afront discharge chamber 40b. Thefront suction chamber 40a communicates with thefront suction hole 24b. Thefront discharge chamber 40b communicates with thefront discharge path 24c. Thefront suction chamber 40a and thefront discharge chamber 40b each have a volume varying in accordance with a position of thefront piston 25. - With reference again to
FIG. 1 , thefront head 23 closes thefront cylinder hole 24a. Thefront head 23 is fixed to an inner peripheral surface of thecasing 10. - The
front head 23 includes afront bearing 23a supporting thecrankshaft 17. Thefront head 23 further includes afront discharge port 23b. Thefront discharge port 23b communicates with thefront discharge path 24c. Thefront discharge port 23b is a passage allowing a refrigerant compressed in thefront compression chamber 40 to be sent to afront muffler space 32. Thefront head 23 has an upper surface to which a front discharge valve (not depicted) configured to close or open thefront discharge port 23b is attached. The front discharge valve inhibits a backflow of a refrigerant from thefront muffler space 32 to thefront compression chamber 40. - The
front muffler 26 is fixed to the upper surface of thefront head 23. Thefront muffler 26 and thefront head 23 shape thefront muffler space 32.FIG. 3 is a perspective view of thefront head 23 to which thefront muffler 26 is attached. Thefront muffler 26 includes a fixedportion 26a and aprotrusion 26b. The fixedportion 26a is a peripheral portion fixed to the upper surface of thefront head 23. Theprotrusion 26b protrudes upward from the fixedportion 26a. Thefront muffler 26 is provided to reduce noise generated when a refrigerant is discharged from thefront discharge port 23b of thefront head 23. - The
front muffler 26 has a front bearing throughhole 26c. Thefront bearing 23a of thefront head 23 penetrates the front bearing throughhole 26c. Thefront muffler 26 has two frontmuffler discharge holes 26d. The frontmuffler discharge holes 26d communicate with the front bearing throughhole 26c. - The
middle plate 31 depicted inFIG. 1 closes thefront cylinder hole 24a and arear cylinder hole 44a to be described later. -
FIG. 4 is a sectional view of thecompression mechanism 15 at the height of therear compression chamber 41. Therear cylinder 44 is provided with therear cylinder hole 44a, arear suction hole 44b, a rear discharge path 44c, a rearbush accommodation hole 44d, a rearblade accommodation hole 44e, and a rearcylinder communication hole 44h. - The
rear cylinder hole 44a has a columnar shape and vertically penetrates therear cylinder 44. Therear suction hole 44b radially penetrates therear cylinder 44. The rear discharge path 44c is constituted by a cutout at a lower end of an inner circumferential surface of therear cylinder 44. - The rear
bush accommodation hole 44d, the rearblade accommodation hole 44e, and the rearcylinder communication hole 44h each vertically penetrate therear cylinder 44. The rearbush accommodation hole 44d is positioned between therear suction hole 44b and the rear discharge path 44c in a planar view. The rearbush accommodation hole 44d communicates with therear cylinder hole 44a. The rearblade accommodation hole 44e communicates with the rearbush accommodation hole 44d. The rearcylinder communication hole 44h constitutes part of the mufflerspace communication path 34a to be described later. - The
rear piston 45 includes a rear roller 45a and arear blade 45b. The rear roller 45a has a cylindrical shape. Therear blade 45b has a plate shape. Therear blade 45b protrudes in a radial direction of the rear roller 45a from an outer circumferential surface of the rear roller 45a. - The rear roller 45a is accommodated in the
rear cylinder hole 44a. The rear roller 45a has a hole into which the reareccentric part 17b of thecrankshaft 17 is fitted. Therear blade 45b is accommodated in therear cylinder hole 44a, the rearbush accommodation hole 44d, and the rearblade accommodation hole 44e. The rearbush accommodation hole 44d further accommodates arear bush 42. Therear bush 42 includes a pair of semicolumnar members. The rear roller 45a revolves around the rotation axis RA. - The
rear piston 45 divides therear compression chamber 41 into arear suction chamber 41a and arear discharge chamber 41b. Therear suction chamber 41a communicates with therear suction hole 44b. Therear discharge chamber 41b communicates with the rear discharge path 44c. Therear suction chamber 41a and therear discharge chamber 41b each have a volume varying in accordance with a position of therear piston 45. - With reference again to
FIG. 1 , therear head 43 closes therear cylinder hole 44a. Therear head 43 includes arear bearing 43a supporting thecrankshaft 17. Therear head 43 further includes arear discharge port 43b. Therear discharge port 43b communicates with the rear discharge path 44c. Therear discharge port 43b is a passage allowing a refrigerant compressed in therear compression chamber 41 to be sent to arear muffler space 33. - The
rear head 43 has a lower surface to which a rear discharge valve (not depicted) configured to close or open therear discharge port 43b is attached. The rear discharge valve inhibits a backflow of a refrigerant from therear muffler space 33 to therear compression chamber 41. -
FIG. 5 is a perspective view of therear head 43. Therear head 43 has aside wall 43d. Theside wall 43d is an annular portion provided at an outer edge of the lower surface of therear head 43. Theside wall 43d is smaller in height than therear bearing 43a. Theside wall 43d has a plurality ofmuffler fastening holes 43e. Themuffler fastening holes 43e each allow a bolt to pass in order to fix therear muffler 46 to therear head 43. - The
rear head 43 has a mufflerbottom surface 43f and a rearhead communication hole 43h. Themuffler bottom surface 43f constitutes the lower surface of therear head 43 positioned between theside wall 43d and therear bearing 43a. The rearhead communication hole 43h opens in themuffler bottom surface 43f. The rearhead communication hole 43h constitutes part of the mufflerspace communication path 34a to be described later. Themuffler bottom surface 43f is provided with arear discharge valve 43c. - With reference again to
FIG. 1 , therear muffler 46 is fixed, by a bolt, to a lower surface of theside wall 43d of therear head 43. Therear muffler 46 is a plate-shaped member. Therear muffler 46 reduces noise generated when a refrigerant is discharged from therear discharge port 43b. - The
rear muffler 46 has a rear bearing through hole penetrated by therear bearing 43a of therear head 43. Therear muffler 46 covers the lower surface of therear head 43 such that therear muffler 46 and therear head 43 form therear muffler space 33. Therear muffler space 33 has a substantially annular shape. - The
compression mechanism 15 includes the mufflerspace communication path 34a. The mufflerspace communication path 34a allows thefront muffler space 32 and therear muffler space 33 to communicate with each other. As depicted inFIG. 1 , the mufflerspace communication path 34a penetrates thefront head 23, thefront cylinder 24, themiddle plate 31, therear cylinder 44, and therear head 43. The mufflerspace communication path 34a includes the frontcylinder communication hole 24h, the rearcylinder communication hole 44h, and the rearhead communication hole 43h. - The
suction pipes 19 allow a refrigerant to be supplied from a refrigerant circuit to thecompression mechanism 15. The twosuction pipes 19 are respectively connected to thefront suction hole 24b and therear suction hole 44b. The twosuction pipes 19 are connected to theaccumulator 102. - The
discharge pipe 20 allows a refrigerant compressed by thecompression mechanism 15 to be supplied to the refrigerant circuit. Thedischarge pipe 20 has a first end positioned above themotor 16 in the internal space of thecasing 10. Thedischarge pipe 20 has a second end connected to the refrigerant circuit in a space outside thecasing 10. - The
temperature detector 50 is configured to sense temperature of an object in contact. Thetemperature detector 50 may be exemplified by a thermistor. Thecompressor 101 may be stopped by a control device when the thermistor outputs temperature exceeding a predetermined threshold. - The
temperature detector 50 may alternatively be configured as a thermostat. Specifically, when the thermostat senses temperature exceeding a predetermined threshold, power supply to the compressor may be interrupted. Examples of the thermostat may include a bimetal thermostat. The examples of the thermostat may further include an overload relay and a thermal relay. - The
temperature detector 50 is attached to an outer surface of thetrunk 11 of thecasing 10 in order to acquire temperature of thecompression mechanism 15.FIG. 6 ,FIG. 7 ,FIG. 8 , andFIG. 9 are explanatory views on a position where thetemperature detector 50 is attached. - As depicted in
FIG. 6 , thetemperature detector 50 is attached to an outer surface of a compressionmechanism contact portion 10a. The compressionmechanism contact portion 10a of thecasing 10 is in contact with thecompression mechanism 15. The compressionmechanism contact portion 10a according to the present embodiment is a portion of thetrunk 11 whose inner surface is in contact with thefront head 23. In a side view, the compressionmechanism contact portion 10a has a length H1 that is along the rotation axis RA and is at least partially overlapped with a length H2, along the rotation axis RA, of thetemperature detector 50. At least 90% of the length H1 is overlapped with the length H2, or at least 90% of the length H2 is overlapped with the length H1. - It is preferred that, as depicted in
FIG. 7 , thetemperature detector 50 is attached so as to cover the compression mechanism extensionsection contact portion 10c in a side view. The compression mechanism extensionsection contact portion 10c of thecasing 10 is in contact with a compressionmechanism extension section 15a. The compressionmechanism extension section 15a radially extends from a center to a peripheral edge of thecompression mechanism 15. The center of thecompression mechanism 15 corresponds to a portion, which is positioned at a center of the internal space of thecasing 10, of a member constituting a wall surface of the compression chamber (thefront compression chamber 40, the rear compression chamber 41), a member in contact with the member constituting the wall surface of the compression chamber, or the like. Examples of the center of thecompression mechanism 15 include a center of thefront head 23 and an inner circumferential portion of a cylinder (thefront cylinder 24, the rear cylinder 44). The peripheral edge of thecompression mechanism 15 is a portion of thecompression mechanism 15 in contact with thecasing 10, and examples of the peripheral edge of thecompression mechanism 15 include an outer edge of the front head 23 (in a case where thefront head 23 is in contact with the casing 10) and an outer edge of the cylinder (in a case where the cylinder is in contact with the casing 10). The compressionmechanism extension section 15a according to the present embodiment constitutes part of thefront head 23. The compressionmechanism extension section 15a has a thickness H3. -
FIG. 8 is a schematic plan view of thecompressor 101 and theaccumulator 102. Theaccumulator 102 is connected to thecompressor 101 via the twosuction pipes 19. The twosuction pipes 19 are respectively connected to thefront suction hole 24b and therear suction hole 44b of thecompression mechanism 15. This figure includes a first imaginary half line L1 and a second imaginary half line L2. The first imaginary half line L1 starts from the rotation axis RA and passes centers of thefront suction hole 24b and therear suction hole 44b in a planar view. The second imaginary half line L2 starts from the rotation axis RA and passes thetemperature detector 50 in a planar view. The first imaginary half line L1 and the second imaginary half line L2 form an angle θ not less than 30 degrees and not more than 330 degrees. That is, thetemperature detector 50 is attached to any point in an area A indicated in the figure. Assume that the angle θ increases counterclockwise from the first imaginary half line L1 to the second imaginary half line L2. -
FIG. 9 is a plan view of thecompression mechanism 15 along with a section of thetrunk 11. Thefront head 23 includes acontinuous portion 23r and adiscontinuous portion 23s. Thecontinuous portion 23r radially occupies from anouter edge 40z of thefront compression chamber 40 to thecasing 10. In thediscontinuous portion 23s, thecasing 10 is separated from theouter edge 40z of thecompression chamber 40 by anoil return hole 23c. Theouter edge 40z of thecompression chamber 40 agrees with an outline of thefront cylinder hole 24a. Theoil return hole 23c is an opening that allows refrigerating machine oil in a high-pressure space S1 to return to theoil reservoir 10b. Thetemperature detector 50 is attached to an outer surface of a portion, which is in contact with thecontinuous portion 23r, of the compressionmechanism contact portion 10a of thecasing 10. That is, thetemperature detector 50 is attached to any point in an area B indicated in the figure. - The
motor 16 being energized rotates thecrankshaft 17 along with therotor 52. The fronteccentric part 17a and the reareccentric part 17b eccentrically rotate around the rotation axis RA of thecrankshaft 17. This causes revolution of thefront piston 25 and therear piston 45. - While the
front piston 25 revolves, the outer circumferential surface of thefront roller 25a is in contact with the inner circumferential surface of thefront cylinder 24. Thefront blade 25b reciprocates while being supported by thefront bush 22 at the opposite sides. Thefront bush 22 swings in the frontbush accommodation hole 24d while being sliding with respect to thefront cylinder 24 and thefront blade 25b. - Revolution of the
front roller 25a gradually increases the volume of thefront suction chamber 40a. This causes a refrigerant having low pressure to be sucked from thesuction pipe 19 into thefront suction chamber 40a. Further revolution of thefront roller 25a causes thefront suction chamber 40a to become thefront discharge chamber 40b. The volume of thefront discharge chamber 40b gradually decreases, so that the refrigerant having low pressure in thefront discharge chamber 40b is compressed to become a refrigerant having high pressure. The refrigerant having high pressure is discharged into thefront muffler space 32 via thefront discharge path 24c and thefront discharge port 23b. Thefront muffler space 32 periodically receives the refrigerant having high pressure from thefront discharge port 23b. - While the
rear piston 45 revolves, the outer circumferential surface of the rear roller 45a is in contact with the inner circumferential surface of therear cylinder 44. Therear blade 45b reciprocates while being supported by therear bush 42 at the opposite sides. Therear bush 42 swings in the rearbush accommodation hole 44d while being sliding with respect to therear cylinder 44 and therear blade 45b. - Revolution of the rear roller 45a gradually increases the volume of the
rear suction chamber 41a. This causes a refrigerant having low pressure to be sucked from thesuction pipe 19 into therear suction chamber 41a. Further revolution of the rear roller 45a causes therear suction chamber 41a to become therear discharge chamber 41b. The volume of therear discharge chamber 41b gradually decreases, so that the refrigerant having low pressure in therear discharge chamber 41b is compressed to become a refrigerant having high pressure. The refrigerant having high pressure is discharged into therear muffler space 33 via the rear discharge path 44c and therear discharge port 43b. Therear muffler space 33 periodically receives the refrigerant having high pressure from therear discharge port 43b. - The refrigerant discharged into the
rear muffler space 33 flows in therear muffler space 33 and enters the mufflerspace communication path 34a. The refrigerant then flows into thefront muffler space 32. The refrigerant in thefront muffler space 32 passes the frontmuffler discharge holes 26d of thefront muffler 26 and is supplied into the high-pressure space S1 in thecasing 10. The refrigerant supplied into the high-pressure space S1 flows upward to be supplied to thedischarge pipe 20. - (4-1)
Thetemperature detector 50 is configured to measure temperature of the compressionmechanism contact portion 10a of thecasing 10. The compressionmechanism contact portion 10a is in contact with thecompression mechanism 15. Thetemperature detector 50 can thus sense abnormal heating at thecompression mechanism 15. - (4-2)
This configuration secures an overlapped portion of the compressionmechanism contact portion 10a and thetemperature detector 50. The overlapped portion has a length that is at least 90% of the length of the compressionmechanism contact portion 10a or thetemperature detector 50. In this configuration, heat emitted from thecompression mechanism 15 is likely to be transmitted to thetemperature detector 50 that can thus sense abnormal heating at thecompression mechanism 15. - (4-3)
Thetemperature detector 50 can be configured to cover the compression mechanism extensionsection contact portion 10c in a side view. Heat generated at thecompression mechanism 15 is thus likely to be transmitted directly to thetemperature detector 50 through the compressionmechanism extension section 15a. - (4-4)
Temperature of thecompression mechanism 15 is detected accurately in the rotary compressor. - (4-5)
The compressionmechanism contact portion 10a and theouter edge 40z of thefront compression chamber 40 are connected via thecontinuous portion 23r of thefront head 23. Thecontinuous portion 23r has nooil return hole 23c. Heat of thecompression mechanism 15 is thus likely to be transmitted to the compressionmechanism contact portion 10a, enabling more accurate sensing of abnormal heating at thecompression mechanism 15. - (4-6)
This configuration secures distance between thesuction pipe 19 or theaccumulator 102 connected to thesuction pipe 19 and thetemperature detector 50. This inhibits defects such as decrease in detection temperature of thetemperature detector 50 by theaccumulator 102 having low temperature. - (4-7)
In the case where thetemperature detector 50 is configured as a thermistor, thecompressor 101 can be controlled in accordance with measured temperature. In the case where thetemperature detector 50 is configured as a thermostat, a control circuit of thecompressor 101 can be shut down upon sensing of abnormal temperature. - The
compressor 101 according to the embodiment described above is configured as a two-cylinder rotary compressor. Thecompressor 101 may be configured as a single-cylinder rotary compressor, a multistage rotary compressor other than a two-stage type, or the like. - The
compression mechanism 15 according to the above embodiment includes a contact member that is in contact with thecasing 10 and corresponds to thefront head 23. The contact member may alternatively be a component other than thefront head 23. For example, the contact member may constitute at least part of thefront cylinder 24, therear cylinder 44, or therear head 43. - The compression
mechanism extension section 15a may also be thefront cylinder 24, therear cylinder 44, therear head 43, or the like, instead of thefront head 23. - The embodiment of the present disclosure has been described above. Various modifications to modes and details should be available without departing from the purpose and the scope of the present disclosure recited in the claims.
-
- 10:
- casing
- 10a:
- compression mechanism contact portion
- 10c:
- compression mechanism extension section contact portion
- 15:
- compression mechanism
- 15a:
- compression mechanism extension section
- 23:
- front head
- 23r:
- continuous portion
- 23s:
- discontinuous portion
- 24:
- front cylinder
- 24a:
- front cylinder hole
- 24b:
- front suction hole
- 24c:
- front discharge path
- 25:
- front piston
- 40:
- front compression chamber
- 40z:
- outer edge
- 41:
- rear compression chamber
- 43:
- rear head
- 50:
- temperature detector
- 101:
- compressor
- 102:
- accumulator
-
[Patent Literature 1] JP 2008-106738 A
Claims (8)
- A compressor (101) comprising:a compression mechanism (15) having a rotation axis (RA) a cylinder (24), a piston (25) configured to revolve around the rotation axis, a head defining, along with the cylinder and the piston, a compression chamber (40), and a contact member;a casing (10) including a trunk (11) accommodating the compression mechanism; anda temperature detector (50); whereinthe casing includes a compression mechanism contact portion (10a) which is a portion of the trunk (11) and has an inner surface and an outer surface, wherein the inner surface of the compression mechanism contact portion (10a) is in contact with the contact member of the compression mechanism (15)the compressor being characterized in that,the temperature detector (50) is attached to the outer surface of the compression mechanism contact portion (10a), so thatin a side view, at least 90% of a length (H1) of the compression mechanism contact portion along the rotation axis is overlapped with the temperature detector in a side view, orin a side view, at least 90% of a length (H2) of the temperature detector along the rotation axis is overlapped with the compression mechanism contact portion,and in that the contact member is the cylinder or the head.
- The compressor according to claim 1, whereinthe compression mechanism (15) includes a compression mechanism extension section (15a),the compression mechanism extension section radially extends from a center to a peripheral edge of the compression mechanism,the casing includes a compression mechanism extension section contact portion (10c),the compression mechanism extension section contact portion (10c) is a portion of the casing in contact with the compression mechanism extension section, andthe temperature detector is attached to the casing so as to cover the compression mechanism extension section contact portion in a side view.
- The compressor according to any of the previous claims, wherein the head is a front head (23).
- The compressor according to any of the previous claims, whereinthe contact member includes a continuous portion (23r) radially occupying from an outer edge (40z) of the compression chamber to the compression mechanism contact portion, andthe continuous portion has no opening.
- The compressor according to any one of claims 1 to 4, whereinthe compression mechanism has a suction hole (24b),a first imaginary half line (L1) starts from the rotation axis and passes a center of the suction hole in a planar view,a second imaginary half line (L2) starts from the rotation axis and passes the temperature detector in a planar view, andthe first imaginary half line and the second imaginary half line form an angle (θ) not less than 30 degrees and not more than 330 degrees.
- The compressor according to any one of claims 1 to 5, wherein
the temperature detector is a thermistor. - The compressor according to any one of claims 1 to 5, wherein
the temperature detector is a thermostat. - The compressor according to any of the previous claims, wherein the compression mechanism is a single-cylinder compression mechanism or a multi-cylinder compression mechanism.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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JP2017246140 | 2017-12-22 | ||
PCT/JP2018/040178 WO2019123841A1 (en) | 2017-12-22 | 2018-10-29 | Compressor |
Publications (3)
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EP3730794A1 EP3730794A1 (en) | 2020-10-28 |
EP3730794A4 EP3730794A4 (en) | 2020-11-18 |
EP3730794B1 true EP3730794B1 (en) | 2024-05-01 |
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ID=66992776
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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EP18891681.1A Active EP3730794B1 (en) | 2017-12-22 | 2018-10-29 | Compressor |
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US (1) | US11506206B2 (en) |
EP (1) | EP3730794B1 (en) |
JP (1) | JP6575665B2 (en) |
CN (1) | CN111492144B (en) |
AU (1) | AU2018387906B2 (en) |
BR (1) | BR112020010582B1 (en) |
ES (1) | ES2984505T3 (en) |
MY (1) | MY199415A (en) |
WO (1) | WO2019123841A1 (en) |
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JP7378275B2 (en) * | 2019-11-08 | 2023-11-13 | 日立ジョンソンコントロールズ空調株式会社 | Compressor, outdoor unit and air conditioner |
Family Cites Families (13)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE68924005T2 (en) * | 1988-06-21 | 1996-03-21 | Daikin Ind Ltd | Temperature control device for liquid cooling systems. |
JPH0544679A (en) * | 1991-08-19 | 1993-02-23 | Mitsubishi Heavy Ind Ltd | Sealed type rotary compressor |
JP4144112B2 (en) * | 1999-05-12 | 2008-09-03 | 株式会社デンソー | Hermetic electric compressor |
CN100434709C (en) * | 2004-06-28 | 2008-11-19 | 乐金电子(天津)电器有限公司 | Temperature sensor arranging structure for vortex compressor |
US7322806B2 (en) * | 2006-01-04 | 2008-01-29 | Scroll Technologies | Scroll compressor with externally installed thermostat |
JP2008106738A (en) | 2006-09-29 | 2008-05-08 | Fujitsu General Ltd | Rotary compressor and heat pump system |
CN101153600A (en) * | 2006-09-29 | 2008-04-02 | 富士通将军股份有限公司 | Rotary compressor and heat pump system |
JP2008248865A (en) * | 2007-03-30 | 2008-10-16 | Fujitsu General Ltd | Injectible two-stage compression rotary compressor and heat pump system |
CN101684807A (en) * | 2008-09-28 | 2010-03-31 | 乐金电子(天津)电器有限公司 | Protection device of enclosed type compressor |
JP2010190183A (en) * | 2009-02-20 | 2010-09-02 | Sanyo Electric Co Ltd | Sealed type rotary compressor |
ES2681217T3 (en) * | 2010-01-20 | 2018-09-12 | Daikin Industries, Ltd. | Compressor |
JP5321697B2 (en) * | 2012-01-12 | 2013-10-23 | 株式会社富士通ゼネラル | Injection-compatible two-stage compression rotary compressor |
US10125768B2 (en) * | 2015-04-29 | 2018-11-13 | Emerson Climate Technologies, Inc. | Compressor having oil-level sensing system |
-
2018
- 2018-10-29 WO PCT/JP2018/040178 patent/WO2019123841A1/en unknown
- 2018-10-29 ES ES18891681T patent/ES2984505T3/en active Active
- 2018-10-29 CN CN201880081246.2A patent/CN111492144B/en active Active
- 2018-10-29 US US16/771,565 patent/US11506206B2/en active Active
- 2018-10-29 JP JP2018202813A patent/JP6575665B2/en active Active
- 2018-10-29 AU AU2018387906A patent/AU2018387906B2/en active Active
- 2018-10-29 EP EP18891681.1A patent/EP3730794B1/en active Active
- 2018-10-29 MY MYPI2020002751A patent/MY199415A/en unknown
- 2018-10-29 BR BR112020010582-1A patent/BR112020010582B1/en active IP Right Grant
Also Published As
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US11506206B2 (en) | 2022-11-22 |
CN111492144A (en) | 2020-08-04 |
US20200392959A1 (en) | 2020-12-17 |
CN111492144B (en) | 2022-03-04 |
BR112020010582A2 (en) | 2020-11-10 |
BR112020010582B1 (en) | 2023-12-12 |
WO2019123841A1 (en) | 2019-06-27 |
EP3730794A4 (en) | 2020-11-18 |
AU2018387906A1 (en) | 2020-07-30 |
AU2018387906B2 (en) | 2021-09-09 |
MY199415A (en) | 2023-10-26 |
JP2019113059A (en) | 2019-07-11 |
ES2984505T3 (en) | 2024-10-29 |
JP6575665B2 (en) | 2019-09-18 |
EP3730794A1 (en) | 2020-10-28 |
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